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Impact of energy dissipation on interface shapes and on rates for dewetting from liquid substrates

机译:能量耗散对界面形状和液体基材脱湿速率的影响

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摘要

We revisit the fundamental problem of liquid-liquid dewetting and perform a detailed comparison of theoretical predictions based on thin-film models with experimental measurements obtained by atomic force microscopy. Specifically, we consider the dewetting of a liquid polystyrene layer from a liquid polymethyl methacrylate layer, where the thicknesses and the viscosities of both layers are similar. Using experimentally determined system parameters like viscosity and surface tension, an excellent agreement of experimentally and theoretically obtained rim profile shapes are obtained including the liquid-liquid interface and even dewetting rates. Our new energetic approach additionally allows to assess the physical importance of different contributions to the energy-dissipation mechanism, for which we analyze the local flow fields and the local dissipation rates. Using this approach, we explain why dewetting rates for liquid-liquid systems follow no universal power law, despite the fact that experimental velocities are almost constant. This is in contrast to dewetting scenarios on solid substrates and in contrast to previous results for liquid-liquid substrates using heuristic approaches.
机译:我们重新审视了液-液反润湿的基本问题,并对基于薄膜模型的理论预测与通过原子力显微镜获得的实验测量结果进行了详细的比较。具体而言,我们考虑了液态聚苯乙烯层与液态聚甲基丙烯酸甲酯层的去湿,其中两层的厚度和粘度相似。使用实验确定的系统参数(如粘度和表面张力),可以获得包括液体-液体界面甚至润湿速率在内的实验和理论上获得的轮辋轮廓形状的极佳一致性。我们的新的能量方法还可以评估对能量耗散机制的不同贡献的物理重要性,为此我们分析了局部流场和局部耗散率。使用这种方法,我们解释了为什么液-液系统的去湿率不遵循通用幂律,尽管实验速度几乎是恒定的。这与固体衬底上的去湿方案相反,并且与先前使用启发式方法的液-液衬底的结果相反。

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